Estimation of activation energy for electroporation and pore growth rate in liquid crystalline and gel phases of lipid bilayers using molecular dynamics simulations

被引:27
作者
Majhi, Amit Kumar [1 ]
Kanchi, Subbarao [1 ]
Venkataraman, V. [1 ]
Ayappa, K. G. [2 ]
Maiti, Prabal K. [1 ]
机构
[1] Indian Inst Sci, Dept Phys, Bangalore 560012, Karnataka, India
[2] Ctr Biosyst Sci & Engn, Dept Chem Engn, Bangalore, Karnataka, India
关键词
TRANSDERMAL DRUG-DELIVERY; PARTICLE MESH EWALD; MEMBRANE ELECTROPORATION; CELL ELECTROPORATION; PHOSPHOLIPID-BILAYER; SKIN ELECTROPORATION; ELECTRIC-FIELDS; PLASMA-MEMBRANE; WATER BRIDGES; TEMPERATURE;
D O I
10.1039/c5sm02029h
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Molecular dynamics simulations of electroporation in POPC and DPPC lipid bilayers have been carried out at different temperatures ranging from 230 K to 350 K for varying electric fields. The dynamics of pore formation, including threshold field, pore initiation time, pore growth rate, and pore closure rate after the field is switched off, was studied in both the gel and liquid crystalline (L-alpha) phases of the bilayers. Using an Arrhenius model of pore initiation kinetics, the activation energy for pore opening was estimated to be 25.6 kJ mol(-1) and 32.6 kJ mol(-1) in the L-alpha phase of POPC and DPPC lipids respectively at a field strength of 0.32 V nm(-1). The activation energy decreases to 24.2 kJ mol(-1) and 23.7 kJ mol(-1) respectively at a higher field strength of 1.1 V nm(-1). At temperatures below the melting point, the activation energy in the gel phase of POPC and DPPC increases to 28.8 kJ mol(-1) and 34.4 kJ mol(-1) respectively at the same field of 1.1 V nm(-1). The pore closing time was found to be higher in the gel than in the L-alpha phase. The pore growth rate increases linearly with temperature and quadratically with field, consistent with viscosity limited growth models.
引用
收藏
页码:8632 / 8640
页数:9
相关论文
共 77 条
  • [1] Acetylsalicylic acid (ASA) increases the solubility of cholesterol when incorporated in lipid membranes
    Alsop, Richard J.
    Barrett, Matthew A.
    Zheng, Songbo
    Dies, Hannah
    Rheinstaedter, Maikel C.
    [J]. SOFT MATTER, 2014, 10 (24) : 4275 - 4286
  • [2] Free Energy and Entropy of Activation for Phospholipid Flip-Flop in Planar Supported Lipid Bilayers
    Anglin, Timothy C.
    Cooper, Michael P.
    Li, Hao
    Chandler, Katherine
    Conboy, John C.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2010, 114 (05) : 1903 - 1914
  • [3] Soft perforation of planar bilayer lipid membranes of dipalmitoylphosphatidylcholine at the temperature of the phase transition from the liquid crystalline to the gel state
    Antonov, VF
    Anosov, AA
    Norik, VP
    Smirnova, EY
    [J]. EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2005, 34 (02): : 155 - 162
  • [4] Atomistic Simulations of Pore Formation and Closure in Lipid Bilayers
    Bennett, W. F. Drew
    Sapay, Nicolas
    Tieleman, D. Peter
    [J]. BIOPHYSICAL JOURNAL, 2014, 106 (01) : 210 - 219
  • [5] Water Defect and Pore Formation in Atomistic and Coarse-Grained Lipid Membranes: Pushing the Limits of Coarse Graining
    Bennett, W. F. Drew
    Tieleman, D. Peter
    [J]. JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2011, 7 (09) : 2981 - 2988
  • [6] Bhandarkar M., 2012, NAMD VERSION 2 9
  • [7] Kinetics, statistics, and energetics of lipid membrane electroporation studied by molecular dynamics simulations
    Boeckmann, Rainer A.
    de Groot, Bert L.
    Kakorin, Sergej
    Neumann, Eberhard
    Grubmueller, Helmut
    [J]. BIOPHYSICAL JOURNAL, 2008, 95 (04) : 1837 - 1850
  • [8] Coffey W. T., 2004, The Langevin Equation: With Applications to Stochastic Problems in Physics, Chemistry and Electrical Engineering, DOI 10.1142/5343
  • [9] Regulation of transbilayer plasma membrane phospholipid asymmetry
    Daleke, DL
    [J]. JOURNAL OF LIPID RESEARCH, 2003, 44 (02) : 233 - 242
  • [10] PARTICLE MESH EWALD - AN N.LOG(N) METHOD FOR EWALD SUMS IN LARGE SYSTEMS
    DARDEN, T
    YORK, D
    PEDERSEN, L
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (12) : 10089 - 10092